CTCF公司
粘蛋白
染色质
核小体
生物
基因组组织
细胞生物学
人口
染色体构象捕获
有丝分裂
增强子
染色质重塑
支架/基质附着区域
遗传学
表观遗传学
基因组
组蛋白
嘉雅宠物
转录因子
基因
计算生物学
表观遗传学
抄写(语言学)
DNA
基因表达
社会学
人口学
作者
Quentin Szabo,Axelle Donjon,Ivana Jerković,Giorgio L. Papadopoulos,Thierry Cheutin,Boyan Bonev,Elphège P. Nora,Benoit G. Bruneau,Frédéric Bantignies,Giacomo Cavalli
出处
期刊:Nature Genetics
[Nature Portfolio]
日期:2020-10-19
卷期号:52 (11): 1151-1157
被引量:223
标识
DOI:10.1038/s41588-020-00716-8
摘要
The genome folds into a hierarchy of three-dimensional structures within the nucleus. At the sub-megabase scale, chromosomes form topologically associating domains (TADs)1-4. However, how TADs fold in single cells is elusive. Here, we reveal TAD features inaccessible to cell population analysis by using super-resolution microscopy. TAD structures and physical insulation associated with their borders are variable between individual cells, yet chromatin intermingling is enriched within TADs compared to adjacent TADs in most cells. The spatial segregation of TADs is further exacerbated during cell differentiation. Favored interactions within TADs are regulated by cohesin and CTCF through distinct mechanisms: cohesin generates chromatin contacts and intermingling while CTCF prevents inter-TAD contacts. Furthermore, TADs are subdivided into discrete nanodomains, which persist in cells depleted of CTCF or cohesin, whereas disruption of nucleosome contacts alters their structural organization. Altogether, these results provide a physical basis for the folding of individual chromosomes at the nanoscale.
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